Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering

Intervertebral disc regeneration strategies based on stem cell differentiation in combination with the design of functional scaffolds is an attractive approach towards repairing/regenerating the nucleus pulposus. The specific aim of this study was to optimise a composite hydrogel composed of type II...

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Main Authors: L Calderon, E Collin, D Velasco-Bayon, M Murphy, D O’Halloran, A Pandit
Format: Article
Language:English
Published: AO Research Institute Davos 2010-09-01
Series:European Cells & Materials
Subjects:
Online Access:http://www.ecmjournal.org/journal/papers/vol020/pdf/v020a12.pdf
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spelling doaj-02832081ccf04cc8909b9a7cb88a88d52020-11-24T21:04:48Zeng AO Research Institute DavosEuropean Cells & Materials1473-22622010-09-0120134148Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineeringL CalderonE CollinD Velasco-BayonM MurphyD O’HalloranA PanditIntervertebral disc regeneration strategies based on stem cell differentiation in combination with the design of functional scaffolds is an attractive approach towards repairing/regenerating the nucleus pulposus. The specific aim of this study was to optimise a composite hydrogel composed of type II collagen and hyaluronic acid (HA) as a carrier for mesenchymal stem cells. Hydrogel stabilisation was achieved by means of 1-ethyl-3(3-dimethyl aminopropyl) carbodiimide (EDC) and N-hydroxysuccinimide (NHS) cross-linking. Optimal hydrogel properties were determined by investigating different concentrations of EDC (8mM, 24mM and 48mM). Stable hydrogels were obtained independent of the concentration of carbodiimide used. The hydrogels cross-linked by the lowest concentration of EDC (8mM) demonstrated high swelling properties. Additionally, improved proliferation of seeded rat mesenchymal stem cells (rMSCs) and hydrogel stability levels in culture were observed with this 8mM cross-linked hydrogel. Results from this study indicate that EDC/NHS (8mM) cross-linked type II collagen/HA hydrogel was capable of supporting viability of rMSCs, and furthermore their differentiation into a chondrogenic lineage. Further investigations should be conducted to determine its potential as scaffold for nucleus pulposus regeneration/repair.http://www.ecmjournal.org/journal/papers/vol020/pdf/v020a12.pdfHydrogelshyaluronic acidtype II collagennucleus pulposusmesenchymal stem cells
collection DOAJ
language English
format Article
sources DOAJ
author L Calderon
E Collin
D Velasco-Bayon
M Murphy
D O’Halloran
A Pandit
spellingShingle L Calderon
E Collin
D Velasco-Bayon
M Murphy
D O’Halloran
A Pandit
Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
European Cells & Materials
Hydrogels
hyaluronic acid
type II collagen
nucleus pulposus
mesenchymal stem cells
author_facet L Calderon
E Collin
D Velasco-Bayon
M Murphy
D O’Halloran
A Pandit
author_sort L Calderon
title Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
title_short Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
title_full Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
title_fullStr Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
title_full_unstemmed Type II collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
title_sort type ii collagen-hyaluronan hydrogel – a step towards a scaffold for intervertebral disc tissue engineering
publisher AO Research Institute Davos
series European Cells & Materials
issn 1473-2262
publishDate 2010-09-01
description Intervertebral disc regeneration strategies based on stem cell differentiation in combination with the design of functional scaffolds is an attractive approach towards repairing/regenerating the nucleus pulposus. The specific aim of this study was to optimise a composite hydrogel composed of type II collagen and hyaluronic acid (HA) as a carrier for mesenchymal stem cells. Hydrogel stabilisation was achieved by means of 1-ethyl-3(3-dimethyl aminopropyl) carbodiimide (EDC) and N-hydroxysuccinimide (NHS) cross-linking. Optimal hydrogel properties were determined by investigating different concentrations of EDC (8mM, 24mM and 48mM). Stable hydrogels were obtained independent of the concentration of carbodiimide used. The hydrogels cross-linked by the lowest concentration of EDC (8mM) demonstrated high swelling properties. Additionally, improved proliferation of seeded rat mesenchymal stem cells (rMSCs) and hydrogel stability levels in culture were observed with this 8mM cross-linked hydrogel. Results from this study indicate that EDC/NHS (8mM) cross-linked type II collagen/HA hydrogel was capable of supporting viability of rMSCs, and furthermore their differentiation into a chondrogenic lineage. Further investigations should be conducted to determine its potential as scaffold for nucleus pulposus regeneration/repair.
topic Hydrogels
hyaluronic acid
type II collagen
nucleus pulposus
mesenchymal stem cells
url http://www.ecmjournal.org/journal/papers/vol020/pdf/v020a12.pdf
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